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IMPLEMENTATION AND VALIDATION OF A SURFACE TENSION MODEL FOR THE MULTI-SCALE APPROACH GENTOP

机译:多尺度方法恒星表面张力模型的实现与验证

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Multiphase flows encountered in the nuclear industry are largely of a complex nature, and knowledge of the accurate distribution of the void fraction is of utmost importance for operation of the reactor under steady, transient, and accident conditions. At high void fractions, strong coalescence leads to the formation of large deformable bubbles. An appropriate multiphase CFD modeling of these flow regimes should be able to account for both, large and small interfacial structures, also including the effect on closure modeling of the large structures. A concept known as GEneralized TwO Phase flow or GENTOP, has been developed at the Helmholtz-Zentrum Dresden-Rossendorf in order to address such flow configurations, by dealing with a resolved potentially-continuous gas field, one or more polydispersed gas fields, and a continuous liquid phase. Application of the model to churn-turbulent and slug flow in vertical pipes [1], have evidenced an important limitation related to the lack of a surface tension modeling within the free surface, which leads to an unphysical accumulation of void near the pipe wall. This work discusses the implementation of surface tension and contact angle within the GENTOP approach, as well as the validation of these models against analytical and experimental results. The validation of the surface tension has been performed against analytically calculated oscillating periods of different shapes of ethanol droplets suspended in air. Furthermore, different contact angles are analyzed for a drop of water residing on a smooth surface. Rising velocities and deformation of a single large bubble rising in a vertical pipe were finally validated against analytical solutions. The implementation of the surface tension model in the GENTOP approach demonstrated improvements on the resolution of the bubble and stability of the interface, with considerable reduction of the numerical diffusion.
机译:在核工业中遇到的多相流量主要是复杂的性质,并且了解空隙分数的准确分布对于在稳定,瞬态和事故条件下对反应器的操作至关重要。在高空隙级分,强聚结导致形成大变形气泡的形成。这些流动制度的适当的多相CFD建模应该能够考虑大小和小的界面结构,也包括对大结构的闭合模型的影响。通过处理解决的潜在连续的气田,一个或多个多分散的气田和一个或多个多分散的气田,在Helmholtz-Zentrum Dresden-Rossendorf中开发了一种被称为广义的两相流或凸起的概念。连续液相。模型在垂直管中的搅拌湍流和块状流动的应用[1]已经证明了与自由表面内缺乏表面张力建模相关的重要限制,这导致管壁附近的空隙的不经密地积累。这项工作探讨了龙眼方法中的表面张力和接触角的实现,以及对分析和实验结果的这些模型的验证。已经针对悬浮在空气中悬浮的不同形状的不同形状的不同形状的不同形状的振荡周期进行了表面张力的验证。此外,分析了不同的接触角,用于留在光滑的表面上的水滴。最终验证了在垂直管中升高的单个大气泡的速度和变形,对抗分析解决方案。恒曲面的表面张力模型的实现证明了对界面的气泡和稳定性的分辨率的改进,具有相当大的减少数值扩散。

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